| Literature DB >> 27656216 |
Yohei Hayashi1, Miho Kusuda Furue2.
Abstract
In recent years, as human pluripotent stem cells (hPSCs) have been commonly cultured in feeder-free conditions, a number of cell culture substrates have been applied or developed. However, the functional roles of these substrates in maintaining hPSC self-renewal remain unclear. Here in this review, we summarize the types of these substrates and their effect on maintaining hPSC self-renewal. Endogenous extracellular matrix (ECM) protein expression has been shown to be crucial in maintaining hPSC self-renewal. These ECM molecules interact with integrin cell-surface receptors and transmit their cellular signaling. We discuss the possible effect of integrin-mediated signaling pathways on maintaining hPSC self-renewal. Activation of integrin-linked kinase (ILK), which transmits ECM-integrin signaling to AKT (also known as protein kinase B), has been shown to be critical in maintaining hPSC self-renewal. Also, since naïve pluripotency has been widely recognized as an alternative pluripotent state of hPSCs, we discuss the possible effects of culture substrates and integrin signaling on naïve hPSCs based on the studies of mouse embryonic stem cells. Understanding the role of culture substrates in hPSC self-renewal and differentiation enables us to control hPSC behavior precisely and to establish scalable or microfabricated culture technologies for regenerative medicine and drug development.Entities:
Year: 2016 PMID: 27656216 PMCID: PMC5021488 DOI: 10.1155/2016/5380560
Source DB: PubMed Journal: Stem Cells Int Impact factor: 5.443
Summary of culture substrates used for culturing undifferentiated hPSCs.
| Name | Commercial name (if any, only major) | Material type | References |
|---|---|---|---|
| Gelatinous protein mixture | Matrigel (Corning) | Crude extract secreted by EHS mouse sarcoma cells | [ |
| Geltrex (Thermo Fisher Scientific) | |||
| Cultrex BME (Trevigen) | |||
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| Laminin | Extracted protein | [ | |
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| Laminin-511 | LN511 (Biolamina) | Recombinant protein | [ |
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| Laminin-521 | LN521 (Biolamina) | Recombinant protein | [ |
| rhLaminin-521 (Thermo Fisher Scientific) | |||
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| Laminin-E8 fragment | iMatrix-511 (Nippi) | Recombinant protein | [ |
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| Vitronectin | Vitronectin XF (Stem Cell Technologies) | Extracted or recombinant protein | [ |
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| Truncated vitronectin | VTN-N (Thermo Fisher Scientific) | Recombinant protein | [ |
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| Fibronectin | Extracted protein | [ | |
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| Collagen type I | Extracted protein | [ | |
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| Nanofibrous gelatin | Processed gelatin | [ | |
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| Customized spider silk protein | Recombinant protein, containing vitronectin motif | [ | |
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| Peptide-acrylate surfaces (PAS) | Synthemax (Corning) | Synthetic polymers with peptides | [ |
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| PMEDSAH | Synthetic polymer | [ | |
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| Synthetic substrates displaying heparin-binding peptides | Synthetic polymers with peptides | [ | |
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| Polyvinylalcohol-co-itaconic acid hydrogels grafted with aoligopeptide derived from vitronectin (KGGPQVTRGDVFTMP) | Synthetic polymers with peptides | [ | |
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| UV/ozone radiation | Modification of typical cell culture plastics | [ | |
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| Hydrogel interfaces of aminopropylmethacrylamide (APMAAm) | Synthetic polymers | [ | |
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| Human E-cadherin-Fc chimeric protein | Recombinant protein | [ | |
Figure 1Possible schemes of ECM (laminin) integrin signaling on hPSC self-renewal.